Advertisements
Advertisements
Question
Find the mean, median and mode of the following data:
| Class | 0 – 10 | 10 – 20 | 20 – 30 | 30 – 40 | 40 – 50 | 50 – 60 | 60 – 70 |
| Frequency | 4 | 4 | 7 | 10 | 12 | 8 | 5 |
Solution
To find the mean let us put the data in the table given below:
| Class | Frequency `bb((f_i))` | Class mark `bb((x_i))` | `bb(f_i x_i)` |
| 0 – 10 | 4 | 5 | 20 |
| 10 – 20 | 4 | 15 | 60 |
| 20 – 30 | 7 | 25 | 175 |
| 30 – 40 | 10 | 35 | 350 |
| 40 – 50 | 12 | 45 | 540 |
| 50 – 60 | 8 | 55 | 440 |
| 60 – 70 | 5 | 65 | 325 |
| Total | `bb(Ʃ f_i = 50)` | `bb(Ʃ f_i x_i)` = 1910 |
Mean = `(sum _ i f_i x_i)/(sum _ i f_i)`
= `1910/50`
= 38.2
Thus, the mean of the given data is 38.2.
Now, to find the median let us put the data in the table given below:
| Class | Frequency `(f_i)` | Cumulative Frequency (cf) |
| 0 – 10 | 4 | 4 |
| 10 – 20 | 4 | 8 |
| 20 – 30 | 7 | 15 |
| 30 – 40 | 10 | 25 |
| 40 – 50 | 12 | 37 |
| 50 – 60 | 8 | 45 |
| 60 – 70 | 5 | 50 |
| Total | N = `bb(Σ f_i)` = 50 |
Now, N = 50 ⇒ `"N"/2 =25.`
The cumulative frequency just greater than 25 is 37 and the corresponding class is 40 – 50.
Thus, the median class is 40 – 50.
∴ l = 40, h = 10, N = 50, f = 10 and cf = 25.
Now,
Median = l + `(("N"/2-"cf")/("f")) xx "h"`
= 40 + `((25-15)/10 )xx 10`
= 40
Thus, the median is 40.
We know that,
Mode = 3(median) – 2(mean)
= 3 × 40 – 2 × 38.2
= 120 – 76.4
= 43.6
Hence, Mean = 38.2, Median = 40 and Mode = 43.6
APPEARS IN
RELATED QUESTIONS
What is primary data?
Explain the meaning of the term Variable.
Explain the meaning of the term Class-integral.
Explain the meaning of the term Frequency.
Find the mean, median and mode of the following data:
| Class | 0 – 50 | 50 – 100 | 100 – 150 | 150 – 200 | 200 – 250 | 250 – 300 | 300 - 350 |
| Frequency | 2 | 3 | 5 | 6 | 5 | 3 | 1 |
Find the mean, median and mode of the following data:
| Marks obtained | 25 - 35 | 35 – 45 | 45 – 55 | 55 – 65 | 65 – 75 | 75 - 85 |
| No. of students | 7 | 31 | 33 | 17 | 11 | 1 |
For a certain distribution, mode and median were found to be 1000 and 1250 respectively. Find mean for this distribution using an empirical relation.
Find the class marks of classes 10 -25 and 35 – 55.
In the following data, find the values of p and q. Also, find the median class and modal class.
| Class | Frequency (f) | Cumulative frequency (cf) |
| 100 – 200 | 11 | 11 |
| 200 – 300 | 12 | p |
| 300 – 400 | 10 | 33 |
| 400- 500 | Q | 46 |
| 500 – 600 | 20 | 66 |
| 600 – 700 | 14 | 80 |
The monthly income of 100 families are given as below :
| Income in ( in ₹) | Number of families |
| 0-5000 | 8 |
| 5000-10000 | 26 |
| 10000-15000 | 41 |
| 15000-20000 | 16 |
| 20000-25000 | 3 |
| 25000-30000 | 3 |
| 30000-35000 | 2 |
| 35000-40000 | 1 |
Calculate the modal income.
Find the class marks of classes 10−25 and 35−55.
Which of the following is not a measure of central tendency?
Explain the meaning of the following terms: Class mark
Explain the meaning of the following terms: True Class Limits
Explain the meaning of the following terms: Frequency
Can the experimental probability of an event be a negative number? If not, why?
The monthly pocket money of ten friends is given below :
₹ 80, ₹ 65, ₹ 35, ₹ 65, ₹ 50, ₹ 30, ₹ 60, ₹ 35, ₹ 65, ₹ 30
What is the highest pocket money?
The Empirical relation between the three measures of central tendency is ______.
